`2.52 g` of oxalic acid dehydrate was dissolved in 100 ml of water, 10 mL of this solution was diluted to 500 mL. The normality of the final solution and the amount of oxalic acid (mg/mL) in the solution are respectively-A. `0.16 N, 5.04`B. `0.08 N, 3.60`C. `0.04 N, 3.60`D. `0.02 N, 10.08`

`2.52 g` of oxalic acid dehydrate was dissolved in 100 ml of water, 10

1.	`2.52 g` of oxalic acid dehydrate was dissolved in 100 ml of water, 10 mL of this solution was diluted to 500 mL. The normality of the final solution and the amount of oxalic acid (mg/mL) in the solution are respectively-A. `0.16 N, 5.04`B. `0.08 N, 3.60`C. `0.04 N, 3.60`D. `0.02 N, 10.08`
Answer» Correct Answer - C Initial Normality `N = (2.52 xx 1000)/(63 xx 100) = 0.4` `{:(underset(\|)(C)OOH),(COOH):}.2H_(2)O` `:.N_(1)V_(1)=N_(2)V_(2)` `0.4 xx 10 = N_(2) xx 500` `N_(2) = (0.4)/(50) = 0.08 N` Then final weight `N = (w xx 100)/(E xx V_(ml))` `0.08 = (w xx 1000)/(63 xx 500)`

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`2.52 g` of oxalic acid dehydrate was dissolved in 100 ml of water, 10 mL of this solution was diluted to 500 mL. The normality of the final solution and the amount of oxalic acid (mg/mL) in the solution are respectively-A. `0.16 N, 5.04`B. `0.08 N, 3.60`C. `0.04 N, 3.60`D. `0.02 N, 10.08`

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